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Updated: Sep 9, 2025

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
A First-Principles Screening for Axial Ligand Regulation of Electrocatalytic Carbon Dioxide Reduction on Dual-Metal
Yaozong Gu1,2, Hualin Chen1,2, Jiangnan Shen1
1College of Chemical Engineering, Zhejiang University of Technology, Hangzhou, Zhejiang 310014, P. R. China.
Abstract:
A primary challenge in the carbon dioxide reduction reaction (CO2RR) is the rational design and engineering of high-efficiency electrocatalysts. A series of M1M2N6 catalysts (M1M2 = NiNi, CoNi, CoFe, CoCo) with precisely tailored axial ligands (R = -OH, -COH, -CN) have been high-throughput screened out to exhibit optimal electrocatalytic activity, which is extended to further estimate their CO2RR performance in this work. The adsorption energies of three distinct ligands at the M1-M2 bridge site are evaluated to quantitatively assess the ligand stabilization. On pristine and ligand-engineered M1M2N6 catalysts, the free energy variation along CO2RR pathways leading to C1 products reveals that the initial proton-coupled electron transfer to form the *HCOO/*COOH intermediate is the main potential-limiting step of yielding the key intermediate CO*. The formation barrier energy difference of <0.06 eV between *HCOO and *COOH intermediates on pristine CoCo/CoFe/CoNi and CN-functionalized CoFe/CoCo catalysts facilitates *CO intermediate generation and enables the subsequent *CO-*CO coupling to C2 products for formation of C2H5OH and C2H6. However, -COH and -OH modification excludes *CO-intermediate formation and directs the reaction toward CH4 and CH3OH production due to the large kinetic energy difference of 0.96-1.11 eV between *HCOO and *COOH. Our results provide a possible axial ligand engineering strategy of regulating C1/C2 product selectivity on different dual-atom catalysts.
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